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Cited 10 time in webofscience Cited 13 time in scopus
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A Robust Iterative Learning Control Technique to Efficiently Mitigate Disturbances for Three-Phase Standalone Invertersopen access

Authors
Basit, Bilal AbdulRehman, Abd UrChoi, Han HoJung, Jin-Woo
Issue Date
Apr-2022
Publisher
IEEE
Keywords
Inverters; Voltage control; Stability analysis; Steady-state; Pulse width modulation; Convergence; Uninterruptible power systems; Constant-voltage constant-frequency inverter; periodic and nonperiodic disturbances; robust iterative learning control (ILC) technique; three-phase standalone inverter with an output LC filter; variable initial states
Citation
IEEE Transactions on Industrial Electronics, v.69, no.4, pp 3233 - 3244
Pages
12
Indexed
SCIE
SCOPUS
Journal Title
IEEE Transactions on Industrial Electronics
Volume
69
Number
4
Start Page
3233
End Page
3244
URI
https://scholarworks.dongguk.edu/handle/sw.dongguk/3398
DOI
10.1109/TIE.2021.3071695
ISSN
0278-0046
1557-9948
Abstract
This article investigates a robust iterative learning control (ILC) technique that effectively rejects the influence of periodic and nonperiodic disturbances for a three-phase constant-voltage constant-frequency standalone voltage source inverter (VSI) with an LC filter under variable initial states. In conventional ILC, the learning dynamics are more complex when the initial iterative state is different at each iteration due to the fixed initial state value. Unlike conventional ILC, the proposed ILC follows a transformed dynamic model for robust learning rule convergence that is less restricted under varying initial states and significantly eliminates the impact of periodic and nonperiodic disturbances. Moreover, a simplified stability analysis is provided, and the conditions required for robust learning rule convergence are discussed. A comparative verification with the results of conventional ILC using a TI TMS320F28335 digital signal processor based prototype standalone VSI proves that the proposed ILC technique offers robust and effective steady-state performance, with benefits such as reduced steady-state errors and low total harmonic distortion under periodic disturbances. Finally, its improved robustness and fast transient-state performance are validated under nonperiodic disturbances due to the existence of tough load conditions, i.e., step-changes of linear, unbalanced, and nonlinear loads with significantly distorted model parameters.
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